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Troglitazone inhibits voltage-dependent calcium currents in guinea pig cardiac myocytes
T Nakajima1, K Iwasawa, H Oonuma
1Second Department of Internal Medicine, Faculty of Medicine, University of Tokyo, Japan.
Background:
It has been suggested that intracellular Ca2+ overload in cardiac myocytes leads to the development of diabetic cardiomyopathy. Troglitazone, an insulin-sensitizing agent, is a promising therapeutic agent for diabetes and has been shown to prevent diabetes-induced myocardial changes. To elucidate the underlying mechanism of troglitazone action on cardiac myocytes, the effects of troglitazone on voltage-dependent Ca2+ currents were examined and compared with classic Ca2+ antagonists (verapamil and nifedipine).
Methods And Results:
Whole-cell voltage-clamp techniques were applied in single guinea pig atrial myocytes. Under control conditions with CsCl internal solution, the voltage-dependent Ca2+ currents consisted of both T-type (ICa,T) and L-type (ICa,L) Ca2+ currents. Troglitazone effectively reduced the amplitude of ICa,L in a concentration-dependent manner. Troglitazone also suppressed ICa,T, but the effect of troglitazone on ICa,T was less potent than that on ICa,L. The current-voltage relationships for ICa,L and the reversal potential for ICa,L were not altered by troglitazone. The half-maximal inhibitory concentration of troglitazone on ICa,L measured at a holding potential of -40 mV was 6.3 micromol/L, and 30 micromol/L troglitazone almost completely inhibited ICa,L. Troglitazone 10 micromol/L did not affect the time courses for inactivation of ICa,L and inhibited ICa,L mainly in a use-independent fashion, without shifting the voltage-dependency of inactivation. This effect was different from those of verapamil and nifedipine. Troglitazone also reduced isoproterenol- or cAMP-enhanced ICa,L.
Conclusions:
These results demonstrate that troglitazone inhibits voltage-dependent Ca2+ currents (T-type and L-type) and then antagonizes the effects of isoproterenol in cardiac myocytes, thus possibly playing a role in preventing diabetes-induced intracellular Ca2+ overload and subsequent myocardial changes.
Insights
Troglitazone, an anti-diabetic drug, inhibits cardiac T-type and L-type calcium currents. This action may prevent diabetic cardiomyopathy by reducing intracellular calcium overload in heart cells.
Area of Science:
- Cardiology
- Pharmacology
- Cell Physiology
Background:
- Intracellular calcium overload in cardiac myocytes is implicated in diabetic cardiomyopathy.
- Troglitazone, an insulin-sensitizing agent, shows promise in preventing diabetes-induced myocardial changes.
- Understanding troglitazone's mechanism on cardiac myocytes is crucial for its therapeutic application.
Purpose of the Study:
- To investigate the effects of troglitazone on voltage-dependent calcium currents in cardiac myocytes.
- To compare troglitazone's effects with known calcium antagonists like verapamil and nifedipine.
Main Methods:
- Whole-cell voltage-clamp techniques were employed on single guinea pig atrial myocytes.
- The study examined both T-type (ICa,T) and L-type (ICa,L) calcium currents.
- Troglitazone's concentration-dependent effects on current amplitude, voltage-dependence, and inactivation were analyzed.
Main Results:
- Troglitazone significantly reduced the amplitude of both ICa,L and ICa,T in a concentration-dependent manner, with a more potent effect on ICa,L.
- Troglitazone did not alter the current-voltage relationships or reversal potential of ICa,L.
- The drug inhibited ICa,L in a use-independent manner and reduced isoproterenol- or cAMP-enhanced ICa,L.
Conclusions:
- Troglitazone inhibits both T-type and L-type voltage-dependent calcium currents in cardiac myocytes.
- This inhibition, along with antagonism of isoproterenol effects, suggests a mechanism for preventing diabetes-induced intracellular calcium overload and subsequent myocardial damage.
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